Prolyl isomerase FKBP12 reduces axon growth and negatively regulates microtubule polymerization by inhibiting CRMP2A
Weissova, R.; Sabo, J.; Chafai, D. E.; Ziak, J.; Buran, P.; Bodakuntla, S.; Janke, C.; Lansky, Z.; Balastik, M.
Show abstract
Prolyl isomerases are enzymes catalyzing conformational change of the peptide bond between proline and the preceding amino acid, regulating the function and stability of their substrates. We have previously identified CRMP2A - the longer isoform of a microtubule-associated protein Collapsin response mediator protein 2 - as a substrate of the phospho-specific prolyl isomerase Pin1. CRMP2A is negatively regulated and destabilized by CDK5 phosphorylation in the distal axons and growth cones. Pin1 specifically binds to phosphorylated CRMP2A and stabilizes it by inducing conformational changes. However, the conformational regulation of unphosphorylated CRMP2 remains unknown. Here, we show that the prolyl isomerase FKBP12 specifically binds to unphosphorylated CRMP2A and regulates its activity. Using in vitro microtubule polymerization assays we demonstrate that CRMP2A promotes microtubule growth and that this function is inhibited by FKBP12. Next, using GFP-EB3 microtubule plus-end tracking assay, we demonstrate that FKBP12 inhibits CRMP2A-mediated microtubule polymerization also in cells. Furthermore, we show that FKBP12 co-localizes with unphosphorylated CRMP2A in growth cones and that expression of FKBP12 reduces axon growth in microfluidic chambers, while FKBP12 knockdown enhances it. Together, we demonstrate that FKBP12 is a negative regulator of microtubule dynamics and axon growth. Moreover, we show that two prolyl isomerases can differentially (positively or negatively) regulate activity of a common substrate depending on its phosphorylation. This provides an additional layer of phosphorylation-dependent or -independent control of protein activity, microtubule dynamics, and neuronal growth. Given the broad substrate specificity of FKBP12 and Pin1, this regulatory mechanism likely contributes to the modulation of diverse proteins and cellular processes in the nervous system and beyond.
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